EP3056084A1 - Insecticidal co-extruded monofilament - Google Patents

Insecticidal co-extruded monofilament Download PDF

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Publication number
EP3056084A1
EP3056084A1 EP16156291.3A EP16156291A EP3056084A1 EP 3056084 A1 EP3056084 A1 EP 3056084A1 EP 16156291 A EP16156291 A EP 16156291A EP 3056084 A1 EP3056084 A1 EP 3056084A1
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EP
European Patent Office
Prior art keywords
insecticide
synergist
monofilament
entomopathogen
insect
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
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EP16156291.3A
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German (de)
French (fr)
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EP3056084B1 (en
Inventor
Mikkel Vestergaard Frandsen
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VESTERGAARD SA
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Vestergaard Frandsen SA
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Priority to DK16156291.3T priority Critical patent/DK3056084T3/en
Priority to EP16156291.3A priority patent/EP3056084B1/en
Publication of EP3056084A1 publication Critical patent/EP3056084A1/en
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    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01NPRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
    • A01N25/00Biocides, pest repellants or attractants, or plant growth regulators, characterised by their forms, or by their non-active ingredients or by their methods of application, e.g. seed treatment or sequential application; Substances for reducing the noxious effect of the active ingredients to organisms other than pests
    • A01N25/34Shaped forms, e.g. sheets, not provided for in any other sub-group of this main group
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01NPRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
    • A01N53/00Biocides, pest repellants or attractants, or plant growth regulators containing cyclopropane carboxylic acids or derivatives thereof
    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01FCHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
    • D01F1/00General methods for the manufacture of artificial filaments or the like
    • D01F1/02Addition of substances to the spinning solution or to the melt
    • D01F1/10Other agents for modifying properties
    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01FCHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
    • D01F6/00Monocomponent artificial filaments or the like of synthetic polymers; Manufacture thereof
    • D01F6/58Monocomponent artificial filaments or the like of synthetic polymers; Manufacture thereof from homopolycondensation products
    • D01F6/62Monocomponent artificial filaments or the like of synthetic polymers; Manufacture thereof from homopolycondensation products from polyesters
    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01FCHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
    • D01F8/00Conjugated, i.e. bi- or multicomponent, artificial filaments or the like; Manufacture thereof

Definitions

  • the present invention relates to insecticidal threads, for example as used for mosquito nets and fabrics.
  • mosquito nets and insecticidal fabrics have turned out in field studies, where it has been found that the efficiency of mosquito nets is reduced when exposed to sunlight or by general exposure to heat.
  • International patent application WO 03/063587 by Vestergaard Frandsen to incorporate insecticide inside a fibre structure with gradual migration of the insecticide to the surface of the fibre.
  • the mosquito net with registerred trademark Olyset Net® by the company Sumitomo® comprises a monofilament polyethylene yarn with insecticide incorporated in the yarn.
  • PBO Piperonyl Butoxide
  • an insecticidal thread having a first and a second cross sectional part, the first part having an insecticide, an insect sterilising agent, an entomopathogen, or a synergist or a combination thereof incorporated in a polymeric material of the first part, the second part being free from insecticide, insect sterilising agent, entomopathogen, and synergist or the second part having an insecticide, an insect sterilising agent, entomopathogen, or synergist or a combination thereof incorporated in a polymeric material of the second part.
  • the content of insecticide or synergist in the second part is different from the content of insecticide, insect sterilising agent, entomopathogen, or synergist or combination thereof of the first part.
  • the first part is a first type of filaments
  • the second part is a second type of filaments
  • the insecticidal thread comprises a first type of filaments and a second type of filaments according to the invention.
  • the first type of filaments has an insecticide, an insect sterilising agent, an entomopathogen, or a synergist or combination thereof incorporated in a polymeric material of the first type of filaments.
  • the second type is insecticide-free, free of insect sterilising agent, free of entomopathogen, and synergist-free or has an insecticide, an insect sterilising agent, an entomopathogen, or synergist or a combination thereof incorporated in a polymeric material of the second type of filaments.
  • the content of insecticide, insect sterilising agent, entomopathogen, or synergist or the combination thereof in the second type of filaments is different from the content of insecticide, insect sterilising agent, entomopathogen, or synergist or the combination thereof in the first type of filaments.
  • the first and the second part may be parts of a co-extruded filament.
  • an extruder may be configured to extrude a thread where one side of the thread constitutes the first part, and the second side of the thread may constitute the second part.
  • a co-extruded thread where the first part surrounds the second part. The latter may be used as a stability enhancing core.
  • the release of the insecticide or synergist in the first and second part can be adjusted independently.
  • the first part and the second part have different contents of insecticide.
  • the first and second part have different content of synergists.
  • the first and the second part have different content of entomopathogens.
  • the first and the second part have different content of insect sterilising agents.
  • the first part for example the first type of filaments
  • a first type of insecticide for example a pyrethroid
  • the second part for example the second type of filaments
  • a synergist for example PBO
  • the first and the second migration speed may be adjusted independently by migration inhibitors or migration promoters, because the migration inhibitors and promoters are present in independent parts of the thread, for example in independent filaments, without mutual interference.
  • the first part may have incorporated therein a first type of insecticide with a first migration speed and a first insecticidal efficiency.
  • the second part may have incorporated therein a second type of insecticide, for example in order to combat insects that are resistant against the first type of insecticide.
  • the release of these two types of insecticide can be adjusted independently, for example by suitable migration promoters or inhibitors.
  • a further alternative includes a sterilising agent only in one of the parts, and or an entomopathogen in one part or the other.
  • the first part for example first type of filaments
  • the second part for example second type of filaments, does not contain any insecticide or synergist but is used to give the thread certain desired physical properties.
  • Another example is a co-extruded thread with a stability enhancing core without insecticide and a surrounding outer part having included a synergist. The entire thread may then be impregnated with an insecticide in order to achieve the desired insecticidal properties.
  • a possible impregnation with a film is disclosed in International patent application WO01/37662 by Skovmand .
  • the impregnated film In order for the synergist, for example PBO, to reach the surface of the thread, the impregnated film must be open for migration of the synergist through the film.
  • Alternative insecticidal coatings applicable in connection with the invention are disclosed in WO 2006/092094 by Liu et al. or in patent application US2007/009563 by Hataipitisuk .
  • the thread according to the invention is a single multifilament yarn with a plurality of filaments belonging to the first type of filaments and a plurality of filaments belonging to the second type of filaments.
  • Such yarns can be fabricated by extrusion in an extruder through an extrusion spinneret with a plurality of openings.
  • the material for the first type of filaments is provided over part of the plurality of spinneret openings and the material for the second type of filaments is provided over another part of the plurality of openings.
  • the material for the first type of filaments is identical to the material of the second type of filaments apart from content of insecticide or synergist.
  • a proper material for extrusion is polypropylene due to the low melting temperature which implies a low risk for evaporation or disintegration of the insecticides and synergists used in the molten polymer during extrusion.
  • polyester Polyethylene Terephthalate, PET
  • the melting temperature of 250°C of polyester implies a risk for disintegration of the insecticide and synergist.
  • the synergist can be added to the molten polymer through a channel before the polymer transporting spindle, or if only a very short contact time is desired between the hot polymer and the insecticide/synergist, just upstream of the extrusion nozzle or even in the extrusion nozzle. It has been experimentally verified that a sufficient amount of PBO can be incorporated in polyester, especially, if the time for the exposure to that temperature is kept short.
  • the extruded polymer may be actively cooled at a short distance downstream of the extrusion nozzle, for example by a cold air jet.
  • the thread is a combination of different type of yarns, where a first yarn consists of only the first type of filaments and a second yarn consists only of the second type of filaments.
  • the thread is a combination, such as a ply, of a first yarn and a second yarn, only.
  • first yarn being a monofilament.
  • An insecticidal monofilament made of polyethylene is known from the Olyset Net® mentioned in the introduction above.
  • the second yarn could be a monofilament as well, for example a polyethylene monofilament with synergist.
  • monofilament yarns may be combined with multifilament yarns. Not only may yarns be plied with different numbers of filaments, but also the materials may be different.
  • a stiff polyester yarn may be combined with a multifilament polyester yarn by plying techniques in order to achieve a combination of the advantages of each yarn.
  • the thread according to the invention is not limited to two type of filaments but may also comprise further types of filaments.
  • the content of insecticide or synergist in the further type of filaments is different from the content of insecticide or synergist of the first and second type of filaments.
  • the amount of insecticide relative to the amount of synergist can be adjusted independently.
  • the thickness of the first yarn relative to the thickness of the second yarn can be varied in different plying techniques.
  • the amount of insecticidal polymer relative to the amount of synergistic polymer in the extruder may be variably adjusted to cover a predetermined number of openings in the extrusion spinneret. The result is an adjustment of the number of insecticidal filaments relative to the number of synergistic filaments.
  • the ratio of the cross sectional area between the first and the second part may be adjusted to advantageously corresponding to the desired long term release rate.
  • the first type of filaments may contain an insecticide but no synergist
  • the second type of filaments may contain a synergist but no insecticide or, at least, not the insecticide of the first type of filaments.
  • insecticides insect sterilising agents, entomopathogen, and/or synergists or combinations thereof in the second type of filaments than in the first type.
  • the thread comprises a third type of filaments containing a second or third insecticide or further combination of insecticides different from the first insecticide.
  • the third type of filaments may contain a different type of insect sterilising agent, entomopathogen, or synergist or combination thereof,
  • co-extruding may be used for providing a thread according to the invention.
  • the thread according to the invention may be a co-extruded monofilament with the first part and the second part in the monofilament or may comprise a co-extruded filament among other filaments, for example monofilament or multi-filaments.
  • Different co-extrusion techniques may be applied, for example wherein the first part is a shell around the second part or wherein the first part and the second part extend from the centre of the monofilament to the rim of the monofilament.
  • the first part and the second part may be made of the same polymer, or alternatively, contain different polymers.
  • the first part and the second part may contain different insecticides, for example in order to counteract insecticidal resistance or to combat insects with sensitivities different for the different insecticides.
  • the first part contains a first insecticide but no synergist
  • the second part contain a synergist, for example PBO, with or without insecticide.
  • the first part and the second part contain different insect sterilising agents, entomopathogen, synergists or combinations thereof, as already indicated above.
  • Additional parts of the thread may contain different agents.
  • one part may contain a synergist, another part may contain insecticide, a third part may contain an entomopathogen, and a fourth part may contain a sterilising agent.
  • the thread may contain only three of these four agents.
  • these contain advantageously a UV protecting agent for protection of the insecticide from UV degradation.
  • Typical use of a thread according to the invention includes insecticidal barriers, for example mosquito nets, and woven or knitted fabrics or on-wovens of various kinds. Another application is for Dumuria fabrics or nettings, especially texturised woven fabrics. Commercially, these are available under the trademark PermaNet® Dumuria.
  • a fencing for example as disclosed in International patent application WO03/003827 by Bauer and Skovmand
  • application as a protective cover for example as disclosed in International patent application WO03/090532 by Vestergaard Frandsen
  • application as an air cleaning net for example as disclosed in International patent application WO06/024304 by Vestergaard Frandsen .
  • synergist comprises one synergist or a plurality of synergists, where the plurality of synergist may be a mixture but need not be so.
  • insecticide covers one insecticide or a plurality of insecticides, where the plurality of insecticides may be a mixture but need not be so.
  • a pyrethroid may be combined with carbamates or organophosphates in order to combat resistant insects as well.
  • the material may have incorporated therein or impregnated on the surface thereof other relevant components, for example conductivity-enhancing agents to prevent static electricity, flame retardants, anti-soiling agents, antifouling agents, further biocides, pigments and dyestuffs.
  • conductivity-enhancing agents to prevent static electricity for example conductivity-enhancing agents to prevent static electricity, flame retardants, anti-soiling agents, antifouling agents, further biocides, pigments and dyestuffs.
  • the insecticide in connection with the invention is a pyrethroid, preferably deltamethrin or permethrin, but other pyrethroids may apply as well, as disclosed as a list in WO 01/37662 .
  • the invention applies as well in connection with cabamates or organophosphates in the composition for impregnation.
  • a more extensive list of possible insecticide is found in WO 01/37662 or in WO 06/128870 also containing examples of repellents.
  • an alternative or supplemental insecticide may also be a sterilising agent with a sterilising effect thus to sterilise the mosquitoes and avoid the next generation of mosquitoes.
  • Such insecticides can be of the benzoyl urea group or triazins.
  • the thread according to the invention may be provided with a first insecticide incorporated into the polymer matrix and with an insecticidal film in addition, for example the film containing another insecticide.
  • a first insecticide incorporated into the polymer matrix
  • an insecticidal film in addition, for example the film containing another insecticide.
  • a thread 1 according to the inventions is illustrated.
  • the thread contains a first monofilament 2 and a second filament 3 together forming the thread.
  • the first thread 2 comprises an insecticide 4, an insect sterilising agent, and/or an entomopathogen, and/or synergist that is migratably incorporated in the thread 2.
  • the insecticide 4 migrates from the interior of the thread 2 to the surface 5 of the thread, which is illustrated by arrow 6. Once being located on the surface of the thread, the insecticide 4 may be taken up by an insect.
  • the second thread 3 may comprise a second insecticide, insect sterilising agent, entomopathogen, or synergist.
  • FIG. 3 illustrates a further embodiment, where the first yarn 7 is a multifilament yarn combined with a second yarn 3, which is a monofilament.
  • FIG. 4a and in enlarged form in FIG. 4b illustrates a thread which is a single multifilament yarn 8 with a large number of a first type of filaments 9 containing an insecticide and a large number of second type of filaments 10 containing a synergist.
  • Such multi-filaments can be produced by extrusion as illustrated in FIG. 5 .
  • a piston 12 pushes molten polymer 13 from inside a housing 14 and through openings 24.
  • insecticide 17 is supplied into the molten polymer 13 and from a second supply tube 15, synergist 16 is supplied into the molten polymer.
  • the extruded polymer in the lower flow 20 contains synergist and the extruded polymer in the upper flow 19 contains insecticide.
  • a number of opening 24 may be provided in order to produce multi-filaments with a high number of filaments at the same time.
  • a partition wall 23 may prevent mixing of the insecticide 17 and the synergist 16.
  • first molten polymer with insecticide to the nozzle from a first extruder cavity and a second molten polymer with synergist from a second extruder cavity.
  • the two polymers may be added to different part of the nozzle in order to provide multifilaments of two types from the same nozzle.
  • an insect sterilising agent or an entomopathogen may be included
  • FIG. 6 illustrates a thread 1 with a number of yarns, a first yarn 7, which is a multifilament yarn comprising a first insecticide, a second yarn 3 comprising a synergist, and a third yarn 21 without insecticide or synergist but adding special physical properties to the yarn, for example increased strength.
  • the thread 1 is coated with a wash protecting film 22 containing a further insecticide and allowing the synergist and the first insecticide to migrate through the film 22.
  • FIG7 illustrates an co-extruder 30 for a monofilament 31 with one part 32 containing polymer 17 and a second part 33 with synergist 16.
  • Molten polymer 34 containing insecticide 17 is supplied under pressure via a first tube 35, and molten polymer 36 containing synergist 16 is supplied via a second tube 37.
  • a partition wall 38 extending into the nozzle 39 prevents the two different molten polymers 32, 33 to be mixed before extrusion.
  • the co-extrusion method may be used to provide a monofilament 40, as illustrated in FIG. 8a , with two cross-sectional halves, where the first half 41 comprises insecticide 17 and the second half 42 comprises synergist 16.
  • the monofilament may contain more than two cross sectional parts, for example four, as illustrated in FIG. 8b , or more.
  • the monofilament 40' may comprise a first part 41' surrounding a second part 42', which constitutes a central core for the filament 40', for example with special mechanical properties.
  • the core 42' contains synergist 16, which is migrating 6' through the first part 41' to the surface of the filament.
  • the insecticide 17 is migrating to the surface of the monofilament 40'.

Abstract

A co-extruded monofilament with a first and a second part with insecticide and/or synergist, use and production thereof and method for controlling migration therefrom.

Description

    FIELD OF THE INVENTION
  • The present invention relates to insecticidal threads, for example as used for mosquito nets and fabrics.
  • BACKGROUND OF THE INVENTION
  • Different insecticidal treatments of nets and different applications of such nets are disclosed in prior art, for example the general treatment of a netting in International patent application WO01/37662 by Skovmand , the application as a fencing in International patent application WO03/003827 by Bauer and Skovmand , the application as a protective cover in International patent application WO03/090532 by Vestergaard Frandsen .
  • One of encountered problems for mosquito nets and insecticidal fabrics has turned out in field studies, where it has been found that the efficiency of mosquito nets is reduced when exposed to sunlight or by general exposure to heat. In order to keep a long lasting efficiency, it has been proposed in International patent application WO 03/063587 by Vestergaard Frandsen to incorporate insecticide inside a fibre structure with gradual migration of the insecticide to the surface of the fibre. The mosquito net with registerred trademark Olyset Net® by the company Sumitomo® comprises a monofilament polyethylene yarn with insecticide incorporated in the yarn.
  • In order to enhance the efficiency on a general basis, synergists have been proposed to be included in fabrics and nettings. For example, in US patent application US 2007/0009563 by Hataipitisuk and in International patent application WO 90/14006 by Mooney et al. , PBO is proposed as efficiency enhancer in insecticidal fibres and fabrics. International Patent applications WO06/128867 by Koradin et al. and WO06/128870 by Karl et al. propose PBO as a synergist in fabrics and nettings.
  • Generally, there is an increased problem with metabolic of insects against insecticides, and Piperonyl Butoxide (PBO) has been proposed for counteracting resistance. In connection with field spraying, PBO is known as a resistance reducer, for example as disclosed in UK patent application 2 388 778 assigned to Rothamsted . US patent 5 503 918 by Samson et al. discloses amylopectin as an insecticidal synergist in tent fabrics, and US 3 859 121 by Yeadon et al. discloses the use of PBO as a synergist in packaging.
  • When different insecticides are incorporated into a polymer matrix, for example as disclosed in WO03/063587 by Vestergaard Frandsen et al. , or if different insecticides are incorporated with a synergist in a polymer matrix for a pet collar, as disclosed in WO6/1247067 by Albright , the migration of the insecticides can be difficult to control, as a migration promoter or inhibitor of one insecticide or synergist may influence the migration of the other insecticide. Thus, if a certain release is desired of different insecticides, this is a difficult to achieve, though highly desired.
  • Especially in connection with mosquito nets or other forms of fibrous insecticidal barriers, a controlled release of different insecticides or of insecticides in combination with synergists is desirable.
  • DESCRIPTION / SUMMARY OF THE INVENTION
  • It is therefore the object of the invention to provide a method for production of a fibrous product where the release of a combination of an insecticide with another insecticide and/or synergist is controlled in a better way.
  • This purpose is achieved with an insecticidal thread having a first and a second cross sectional part, the first part having an insecticide, an insect sterilising agent, an entomopathogen, or a synergist or a combination thereof incorporated in a polymeric material of the first part, the second part being free from insecticide, insect sterilising agent, entomopathogen, and synergist or the second part having an insecticide, an insect sterilising agent, entomopathogen, or synergist or a combination thereof incorporated in a polymeric material of the second part. The content of insecticide or synergist in the second part is different from the content of insecticide, insect sterilising agent, entomopathogen, or synergist or combination thereof of the first part.
  • For example, the first part is a first type of filaments, whereas the second part is a second type of filaments. In this case, the insecticidal thread comprises a first type of filaments and a second type of filaments according to the invention. The first type of filaments has an insecticide, an insect sterilising agent, an entomopathogen, or a synergist or combination thereof incorporated in a polymeric material of the first type of filaments. The second type is insecticide-free, free of insect sterilising agent, free of entomopathogen, and synergist-free or has an insecticide, an insect sterilising agent, an entomopathogen, or synergist or a combination thereof incorporated in a polymeric material of the second type of filaments. The content of insecticide, insect sterilising agent, entomopathogen, or synergist or the combination thereof in the second type of filaments is different from the content of insecticide, insect sterilising agent, entomopathogen, or synergist or the combination thereof in the first type of filaments.
  • An example of fungal biopesticides for insect combat is described by Thomas and Read in Nature Reviews Microbiology, Vol. 5, May 2007, p.377. Though at present, especially fungal entomopathogens seem the most useful, an insect infecting virus, bacteria or protozoa may be applied, alternatively or in addition.
  • Alternatively, the first and the second part may be parts of a co-extruded filament. For example, an extruder may be configured to extrude a thread where one side of the thread constitutes the first part, and the second side of the thread may constitute the second part. Another example is a co-extruded thread, where the first part surrounds the second part. The latter may be used as a stability enhancing core.
  • By providing such a thread, the release of the insecticide or synergist in the first and second part, for example type of filaments, can be adjusted independently.
  • For example, the first part and the second part have different contents of insecticide. Alternatively, or in addition, the first and second part have different content of synergists. As another alternative, or in addition, the first and the second part have different content of entomopathogens. As a further alternative, or in addition, the first and the second part have different content of insect sterilising agents.
  • The term different content refers to different amounts or different types.
  • In certain embodiments of the invention, the first part, for example the first type of filaments, may have incorporated therein a first type of insecticide, for example a pyrethroid, with a first migration speed and a first insecticidal efficiency. The second part, for example the second type of filaments, may have incorporated therein a synergist, for example PBO, with a second migration speed. In order to achieve the optimal amount of released insecticide and synergist, the first and the second migration speed may be adjusted independently by migration inhibitors or migration promoters, because the migration inhibitors and promoters are present in independent parts of the thread, for example in independent filaments, without mutual interference.
  • Alternatively, the first part may have incorporated therein a first type of insecticide with a first migration speed and a first insecticidal efficiency. The second part may have incorporated therein a second type of insecticide, for example in order to combat insects that are resistant against the first type of insecticide. The release of these two types of insecticide can be adjusted independently, for example by suitable migration promoters or inhibitors.
  • Other alternatives include different types of insect sterilising agents in the first and second part and/or different entomopathogens in the first and second part. A further alternative includes a sterilising agent only in one of the parts, and or an entomopathogen in one part or the other.
  • As a further alternative, the first part, for example first type of filaments, may contain a synergist migratably incorporated in the material of the first type of filaments. The second part, for example second type of filaments, does not contain any insecticide or synergist but is used to give the thread certain desired physical properties. Another example is a co-extruded thread with a stability enhancing core without insecticide and a surrounding outer part having included a synergist. The entire thread may then be impregnated with an insecticide in order to achieve the desired insecticidal properties. A possible impregnation with a film is disclosed in International patent application WO01/37662 by Skovmand . In order for the synergist, for example PBO, to reach the surface of the thread, the impregnated film must be open for migration of the synergist through the film. Alternative insecticidal coatings applicable in connection with the invention are disclosed in WO 2006/092094 by Liu et al. or in patent application US2007/009563 by Hataipitisuk .
  • In a preferred embodiment, the thread according to the invention is a single multifilament yarn with a plurality of filaments belonging to the first type of filaments and a plurality of filaments belonging to the second type of filaments. Such yarns can be fabricated by extrusion in an extruder through an extrusion spinneret with a plurality of openings. The material for the first type of filaments is provided over part of the plurality of spinneret openings and the material for the second type of filaments is provided over another part of the plurality of openings. Advantageously, the material for the first type of filaments is identical to the material of the second type of filaments apart from content of insecticide or synergist.
  • A proper material for extrusion is polypropylene due to the low melting temperature which implies a low risk for evaporation or disintegration of the insecticides and synergists used in the molten polymer during extrusion. However, due to its low flammability and cotton-like feeling, polyester (Polyethylene Terephthalate, PET) is a preferred material for fabrics and nettings for which a thread according to the invention is used. However, the melting temperature of 250°C of polyester implies a risk for disintegration of the insecticide and synergist.
  • The synergist can be added to the molten polymer through a channel before the polymer transporting spindle, or if only a very short contact time is desired between the hot polymer and the insecticide/synergist, just upstream of the extrusion nozzle or even in the extrusion nozzle. It has been experimentally verified that a sufficient amount of PBO can be incorporated in polyester, especially, if the time for the exposure to that temperature is kept short.
  • How much this "sufficient amount" of a synergist is, depends on the synergist and the acceptable level of loss. In certain cases, a loss of 99% can be acceptable, if the 1% remaining synergist is still within the range of effective amounts to counteract insecticidal resistance for a long term. In other cases, a loss rate of less than 90% may be acceptable. It has been verified experimentally that for polyester, more than 50% of the synergist stays intact despite an extrusion temperature of more than 250°C.
  • In addition, the extruded polymer may be actively cooled at a short distance downstream of the extrusion nozzle, for example by a cold air jet.
  • In an alternative embodiment, the thread is a combination of different type of yarns, where a first yarn consists of only the first type of filaments and a second yarn consists only of the second type of filaments. For example, the thread is a combination, such as a ply, of a first yarn and a second yarn, only.
  • Different combinations exist, for example the first yarn being a monofilament. An insecticidal monofilament made of polyethylene is known from the Olyset Net® mentioned in the introduction above. The second yarn could be a monofilament as well, for example a polyethylene monofilament with synergist. Alternatively, monofilament yarns may be combined with multifilament yarns. Not only may yarns be plied with different numbers of filaments, but also the materials may be different. For example, a stiff polyester yarn may be combined with a multifilament polyester yarn by plying techniques in order to achieve a combination of the advantages of each yarn.
  • The thread according to the invention is not limited to two type of filaments but may also comprise further types of filaments. In a further embodiment, the content of insecticide or synergist in the further type of filaments is different from the content of insecticide or synergist of the first and second type of filaments.
  • In the plying technique as well as in the extrusion technique of a single multi-filament yarn, the amount of insecticide relative to the amount of synergist can be adjusted independently. In the plying technique, the thickness of the first yarn relative to the thickness of the second yarn can be varied in different plying techniques. In the extrusion of a multifilament yarn, the amount of insecticidal polymer relative to the amount of synergistic polymer in the extruder may be variably adjusted to cover a predetermined number of openings in the extrusion spinneret. The result is an adjustment of the number of insecticidal filaments relative to the number of synergistic filaments. In the case of a co-extruded monofilament, the ratio of the cross sectional area between the first and the second part may be adjusted to advantageously corresponding to the desired long term release rate.
  • As it appears from the foregoing for certain embodiments, the first type of filaments may contain an insecticide but no synergist, and the second type of filaments may contain a synergist but no insecticide or, at least, not the insecticide of the first type of filaments. However, other alternatives are possible, for example, different types and/or combinations of insecticides, insect sterilising agents, entomopathogen, and/or synergists or combinations thereof in the second type of filaments than in the first type.
  • In a further embodiment, the thread comprises a third type of filaments containing a second or third insecticide or further combination of insecticides different from the first insecticide. Also, the third type of filaments may contain a different type of insect sterilising agent, entomopathogen, or synergist or combination thereof,
  • As mentioned in the foregoing, co-extruding may be used for providing a thread according to the invention. The thread according to the invention may be a co-extruded monofilament with the first part and the second part in the monofilament or may comprise a co-extruded filament among other filaments, for example monofilament or multi-filaments. Different co-extrusion techniques may be applied, for example wherein the first part is a shell around the second part or wherein the first part and the second part extend from the centre of the monofilament to the rim of the monofilament. The first part and the second part may be made of the same polymer, or alternatively, contain different polymers. Also, as already described above, the first part and the second part may contain different insecticides, for example in order to counteract insecticidal resistance or to combat insects with sensitivities different for the different insecticides. Alternatively, the first part contains a first insecticide but no synergist, and the second part contain a synergist, for example PBO, with or without insecticide. In addition, the first part and the second part contain different insect sterilising agents, entomopathogen, synergists or combinations thereof, as already indicated above.
  • Additional parts of the thread may contain different agents. For example one part may contain a synergist, another part may contain insecticide, a third part may contain an entomopathogen, and a fourth part may contain a sterilising agent. Alternatively, the thread may contain only three of these four agents.
  • In order to protect the insecticides in parts of the thread, these contain advantageously a UV protecting agent for protection of the insecticide from UV degradation.
  • Typical use of a thread according to the invention includes insecticidal barriers, for example mosquito nets, and woven or knitted fabrics or on-wovens of various kinds. Another application is for Dumuria fabrics or nettings, especially texturised woven fabrics. Commercially, these are available under the trademark PermaNet® Dumuria.
  • Other uses include a fencing, for example as disclosed in International patent application WO03/003827 by Bauer and Skovmand , application as a protective cover, for example as disclosed in International patent application WO03/090532 by Vestergaard Frandsen , or application as an air cleaning net, for example as disclosed in International patent application WO06/024304 by Vestergaard Frandsen .
  • As already apparent from the foregoing, the term synergist comprises one synergist or a plurality of synergists, where the plurality of synergist may be a mixture but need not be so. The term insecticide covers one insecticide or a plurality of insecticides, where the plurality of insecticides may be a mixture but need not be so. For example, a pyrethroid may be combined with carbamates or organophosphates in order to combat resistant insects as well.
  • In addition to the insecticides and/or synergists incorporated into the material, the material may have incorporated therein or impregnated on the surface thereof other relevant components, for example conductivity-enhancing agents to prevent static electricity, flame retardants, anti-soiling agents, antifouling agents, further biocides, pigments and dyestuffs.
  • Preferably, the insecticide in connection with the invention is a pyrethroid, preferably deltamethrin or permethrin, but other pyrethroids may apply as well, as disclosed as a list in WO 01/37662 . However, the invention applies as well in connection with cabamates or organophosphates in the composition for impregnation. A more extensive list of possible insecticide is found in WO 01/37662 or in WO 06/128870 also containing examples of repellents.
  • Where nets are used in mass campaigns, an alternative or supplemental insecticide may also be a sterilising agent with a sterilising effect thus to sterilise the mosquitoes and avoid the next generation of mosquitoes. Such insecticides can be of the benzoyl urea group or triazins.
  • Further possible combinations include metaflumizone as disclosed in WO 06/127407 , N-arylhydrazine as disclosed in WO06128870 or derivatives of 1-Phenyltriazole as disclosed in WO06128867 , for example combined with a pyrethroid.
  • Other synergists than the above mentioned PBO are Sulfoxide, Tropital, Bucarpolate, ethion, profenofos, or dimethoate, Piperonyl Cylonene, TPP, Di-ethyl maleate, NIA-16388 (NIA), S-421, MGK-264 (bicycloheptenedicarboximide), S,S,S-tributyl phosphorotrithoate (DEF), - N-Octylbicycloheptene dicarboxaminde, Sesamin, Sesamolin, or Sesamex.
  • As a further alternative, the thread according to the invention may be provided with a first insecticide incorporated into the polymer matrix and with an insecticidal film in addition, for example the film containing another insecticide. In the case of migration of synergist and/or insecticide in the thread, it is important to take into account the migration speed of the synergist and/or insecticide in the matrix and the migration speed of the further synergists or insecticides. For example, this may be regulated by a proper choice of selectively working migration promoters and migration inhibitors.
  • SHORT DESCRIPTION OF THE DRAWINGS
  • The invention will be explained in more detail with reference to the drawing, where
    • FIG. 1 is an illustration of a thread according to the invention with two different monofilament yarns;
    • FIG. 2 illustrates the first yarn with migrating insecticide
    • FIG. 3 is an illustration of a thread according to the invention with one monofilament yarn and one multifilament yarn;
    • FIG. 4 is an illustration of a thread being a multifilament yarn;
    • FIG. 5 is an illustration of a thread according to the invention with three different types of filaments,
    • FIG. 6 is an illustration of a thread according to the invention with different types of yams and an insecticidal coating,
    • FIG. 7 illustratates co-extrusion of a thread,
    • FIG. 8 illustrates various types of co-extruded threads.
    DETAILED DESCRIPTION / PREFERRED EMBODIMENT
  • In FIG. 1, a thread 1 according to the inventions is illustrated. The thread contains a first monofilament 2 and a second filament 3 together forming the thread. As illustrated in FIG. 2, the first thread 2 comprises an insecticide 4, an insect sterilising agent, and/or an entomopathogen, and/or synergist that is migratably incorporated in the thread 2. The insecticide 4 migrates from the interior of the thread 2 to the surface 5 of the thread, which is illustrated by arrow 6. Once being located on the surface of the thread, the insecticide 4 may be taken up by an insect. The second thread 3 may comprise a second insecticide, insect sterilising agent, entomopathogen, or synergist.
  • FIG. 3 illustrates a further embodiment, where the first yarn 7 is a multifilament yarn combined with a second yarn 3, which is a monofilament.
  • FIG. 4a and in enlarged form in FIG. 4b illustrates a thread which is a single multifilament yarn 8 with a large number of a first type of filaments 9 containing an insecticide and a large number of second type of filaments 10 containing a synergist.
  • Such multi-filaments can be produced by extrusion as illustrated in FIG. 5. In an extruder 11, a piston 12 pushes molten polymer 13 from inside a housing 14 and through openings 24. From one supply tube 18, insecticide 17 is supplied into the molten polymer 13 and from a second supply tube 15, synergist 16 is supplied into the molten polymer. Due to the different location of the insecticide and the synergist, the extruded polymer in the lower flow 20 contains synergist and the extruded polymer in the upper flow 19 contains insecticide. A number of opening 24 may be provided in order to produce multi-filaments with a high number of filaments at the same time. A partition wall 23 may prevent mixing of the insecticide 17 and the synergist 16.
  • Alternatively, not illustrated however, there may be provided a first molten polymer with insecticide to the nozzle from a first extruder cavity and a second molten polymer with synergist from a second extruder cavity. The two polymers may be added to different part of the nozzle in order to provide multifilaments of two types from the same nozzle. As an alternative to the synergist or in addition, an insect sterilising agent or an entomopathogen may be included
  • FIG. 6 illustrates a thread 1 with a number of yarns, a first yarn 7, which is a multifilament yarn comprising a first insecticide, a second yarn 3 comprising a synergist, and a third yarn 21 without insecticide or synergist but adding special physical properties to the yarn, for example increased strength. The thread 1 is coated with a wash protecting film 22 containing a further insecticide and allowing the synergist and the first insecticide to migrate through the film 22.
  • FIG7. illustrates an co-extruder 30 for a monofilament 31 with one part 32 containing polymer 17 and a second part 33 with synergist 16. Molten polymer 34 containing insecticide 17 is supplied under pressure via a first tube 35, and molten polymer 36 containing synergist 16 is supplied via a second tube 37. a partition wall 38 extending into the nozzle 39 prevents the two different molten polymers 32, 33 to be mixed before extrusion.
  • The co-extrusion method may be used to provide a monofilament 40, as illustrated in FIG. 8a, with two cross-sectional halves, where the first half 41 comprises insecticide 17 and the second half 42 comprises synergist 16. The monofilament may contain more than two cross sectional parts, for example four, as illustrated in FIG. 8b, or more.
  • As illustrated in FIG. 8c, the monofilament 40' may comprise a first part 41' surrounding a second part 42', which constitutes a central core for the filament 40', for example with special mechanical properties. The core 42' contains synergist 16, which is migrating 6' through the first part 41' to the surface of the filament. Likewise, the insecticide 17 is migrating to the surface of the monofilament 40'.

Claims (15)

  1. A co-extruded monofilament having a first and a second cross sectional part, the first part having an insecticide, an insect sterilising agent, an entomopathogen, or a synergist or a combination thereof incorporated in a polymeric material of the first part, the second part being free from insecticide, insect sterilising agent, entomopathogen, and synergist, or the second part having an insecticide, an insect sterilising agent, an entomopathogen, or synergist or a combination thereof incorporated in a polymeric material of the second part, wherein the content of insecticide, insect sterilising agent, entomopathogen, or synergist or combination thereof in the second part is different from the content of insecticide, insect sterilising agent, entomopathogen, or synergist or combination thereof in the first part.
  2. A co-extruded monofilament according to claim 1, wherein the first part is a shell around the second part.
  3. A co-extruded monofilament according to claim 1, wherein the first part and the second part extend from the centre of the monofilament to the rim of the monofilament.
  4. A co-extruded monofilament according to any preceding claim, wherein the first part and the second part contain different insecticides.
  5. A co-extruded monofilament according to any preceding claim, wherein the first part contains a first insecticide but no synergist, and the second part contains a synergist.
  6. A co-extruded monofilament according to claim 5, wherein the second part does not contain an insecticide.
  7. A co-extruded monofilament according to claim 5 or 6, wherein the synergist is PBO.
  8. Use of co-extruded monofilament according to according to any one of the claims 1-7 for an insecticidal barrier.
  9. Use according to claim 8, wherein the insecticidal barrier is a mosquito net or a fencing.
  10. A method for controlling migration of a combinations of two different insecticides or of a combination of insecticide and synergist in a co-extruded monofilament according to any one of the claims 1-7, wherein the method comprises, by co-extrusion, incorporating a first insecticide with a first migration speed into the first part of the monofilament and a second insecticide or a synergist with a second migration speed into the second part, adjusting the first and second migration speed independently by migration inhibitor or promotor without mutual interference.
  11. A method according to claim 10, wherein the synergist is PBO.
  12. A method according to claim 10 or 11, wherein the insecticide is a pyrethroid.
  13. A method according to any one of the claims 10-12, wherein the monofilament is part of a fabric, used as an insect barrier and the method is used for controlling migration of a combinations of two insecticides or a combination of insecticide and synergist from the insect barrier to counteract insecticidal resistance.
  14. A method according to claim 13, wherein the insect barrier is a mosquito net or fencing.
  15. A method for production of a co-extruded monofilament yarn according to any one of the claims 1-7, the method comprising co-extruding the monofilament with a first part and a second part in the monofilament, the first part having an insecticide, an insect sterilising agent, an entomopathogen, or a synergist or a combination thereof incorporated in a polymeric material of the first part, the second part being free from insecticide, insect sterilising agent, entomopathogen, and synergist, or the second part having an insecticide, an insect sterilising agent, an entomopathogen, or synergist or a combination thereof incorporated in a polymeric material of the second part, wherein the content of insecticide, insect sterilising agent, entomopathogen, or synergist or combination thereof in the second part is different from the content of insecticide, insect sterilising agent, entomopathogen, or synergist or combination thereof in the first part, wherein the method comprises providing the co-extruder with molten polymer containing insecticide via a first tube and with molten polymer containing synergist via a second tube and preventing mixing of the two different molten polymers before extrusion.
EP16156291.3A 2007-06-29 2007-06-29 Insecticidal co-extruded monofilament Active EP3056084B1 (en)

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EP16156291.3A EP3056084B1 (en) 2007-06-29 2007-06-29 Insecticidal co-extruded monofilament
EP07764449.0A EP2170048B1 (en) 2007-06-29 2007-06-29 Insecticidal thread

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Families Citing this family (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2010057476A (en) * 2008-08-06 2010-03-18 Sumitomo Chemical Co Ltd Insect pest controlling net
AP3032A (en) * 2008-10-21 2014-11-30 Intelligent Insect Control Textile product for killing insects
EP2417287B1 (en) 2009-04-06 2013-11-13 Intelligent Insect Control A textile product (e.g. an insecticide net)
CN102740691B (en) * 2009-04-14 2014-11-12 韦斯特高凡德森有限公司 Mosquito net with dinotefuran and PBO for killing mosquitoes, especially mosquitoes with pyrethroid resistance
US9895189B2 (en) 2009-06-19 2018-02-20 Angiodynamics, Inc. Methods of sterilization and treating infection using irreversible electroporation
EP2451283B1 (en) 2009-07-09 2017-06-21 Basf Se Insecticide-coated substrate for protecting humans and pets
TW201202497A (en) * 2010-04-07 2012-01-16 Vestergaard Frandsen Sa A biocidal polyolefin yarn with 3-12 filaments
TW201210478A (en) * 2010-04-07 2012-03-16 Vestergaard Frandsen Sa Biocidal acid-adjusted polymer with polypropylene
EP2377399A1 (en) * 2010-04-15 2011-10-19 Bayer Cropscience AG Polymer material containing insecticide
US8936801B2 (en) 2011-05-02 2015-01-20 Vestergaard Frandsen Sa Retention of PBO in polymer matrices by phthalocyanines
AP2014008043A0 (en) * 2012-05-16 2014-11-30 Vegro Aps A strong insecticidal net
KR102522846B1 (en) * 2015-03-09 2023-04-18 가부시키가이샤 엔비씨 메슈테크 Insect-proof fiber and insect-proof net using the same
WO2018037093A1 (en) 2016-08-24 2018-03-01 Vestergaard Sa A method and substrate with abamectin and fenpyroximate for killing mosquitoes
WO2018037094A1 (en) 2016-08-24 2018-03-01 Vestergaard Sa Fenazaquin and indoxacarb in a product for killing insects, especially mosquitoes
JP7050004B2 (en) * 2016-12-19 2022-04-07 株式会社イノベックス Insect repellent multifilament and woven knit
WO2018149734A1 (en) 2017-02-14 2018-08-23 Vestergaard Sa A method for killing insects inside a container, such container and use thereof
JP7136579B2 (en) * 2018-04-17 2022-09-13 株式会社イノベックス Insect-resistant multifilament and woven fabrics
KR102209920B1 (en) * 2019-06-10 2021-01-29 조대현 Blended filament with excellent anti-insect property
EP4138601A1 (en) 2020-04-20 2023-03-01 First Step Holdings, LLC Personal protective equipment

Citations (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3859121A (en) 1971-01-07 1975-01-07 Us Agriculture Formulations for preparing long lasting insect repellent finishes for textile fabrics
WO1990014006A1 (en) 1989-05-26 1990-11-29 The Wellcome Foundation Limited Pesticidal compositions
JPH06272112A (en) * 1993-03-19 1994-09-27 Mitsubishi Rayon Co Ltd Miteproofing core-sheath type conjugate fiber and its production
US5503918A (en) 1995-03-10 1996-04-02 Graniteville Company Method and means for retaining permethrin in washable fabrics
JPH08113828A (en) * 1994-10-13 1996-05-07 Nippon Ester Co Ltd Insect repellent core-sheath type conjugated fiber
JPH08120524A (en) * 1994-10-20 1996-05-14 Nippon Ester Co Ltd Polyester fiber
JPH08134720A (en) * 1994-11-09 1996-05-28 Teijin Ltd Functional conjugate fiber and insectproof rug
WO1998003718A1 (en) * 1996-07-24 1998-01-29 Wool Research Organisation Of New Zealand Inc. A method for insect-resist treatment of carpets, textiles and insulation products
WO2001037662A1 (en) 1999-11-25 2001-05-31 Dct Aps Composition for impregnation of fabrics and nettings
WO2003003827A1 (en) 2001-07-05 2003-01-16 Disease Control Textiles Aps A fencing
WO2003063587A1 (en) 2002-01-31 2003-08-07 Vestergaard Frandsen A/S Laminated insecticide dispenser
WO2003090532A1 (en) 2002-04-24 2003-11-06 Dct Aps Protective cover for food and water storage containers
GB2388778A (en) 2002-04-29 2003-11-26 Rothamsted Res Ltd Combatting pesticide resistance
WO2006024304A1 (en) 2004-09-03 2006-03-09 Disease Control Textiles Sa System with canopy and electrode for air cleaning
WO2006092094A1 (en) 2005-03-04 2006-09-08 Tianjin Yorkool International Trading Co., Ltd. Fabric finishing liquor for expelling and killing mosquitoes, method of use and products thereof
WO2006127407A1 (en) 2005-05-24 2006-11-30 Wyeth Device and method for controlling insects
WO2006128867A1 (en) 2005-06-03 2006-12-07 Basf Aktiengesellschaft Derivatives of a 1-phenyltriazole as antiparasitic agents
WO2006128870A2 (en) 2005-06-03 2006-12-07 Basf Aktiengesellschaft Composition for the impregnation of fibers, fabrics and nettings imparting a protective activity against pests
US20070009563A1 (en) 2005-07-06 2007-01-11 Rung Hataipitisuk Process for coating fiber or fabric with insecticide using a temperature of 150°c-190°c for drying
US20070157395A1 (en) * 2006-01-12 2007-07-12 Gongping Cao Method for preparing insecticidal textiles by a dyeing process of synthetic fibres with pyrethoids

Family Cites Families (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5174882A (en) * 1974-12-20 1976-06-29 Nichimo Kk GYOMOYOITONARA BINIAMIJINOKETSUSETSUKOTEIHOHO
JPS5277248A (en) * 1975-12-23 1977-06-29 Unitika Ltd Method of producing double twisted yarn
JPS56111181U (en) * 1980-01-29 1981-08-27
US4803956A (en) * 1984-10-15 1989-02-14 A. H. Robins Company, Incorporated Co-extrustion of multi-component insecticidal pet collars
JPH0465509A (en) * 1990-06-29 1992-03-02 Sumitomo Chem Co Ltd Production of moth-proofing fiber
JPH0465544A (en) * 1990-06-29 1992-03-02 Toray Ind Inc Laver-wound structure yarn and production thereof
US6460321B1 (en) * 1996-12-12 2002-10-08 Gosen Co., Ltd. Racquet string
JP2001220970A (en) * 2000-02-09 2001-08-17 Daio Kasei Kk Mothproof net and method for manufacturing the net
US6640371B2 (en) * 2000-06-02 2003-11-04 Milliken & Company Topical incorporation of solid antimicrobial compounds on yarn surfaces through high pressure
JP2004329148A (en) * 2003-05-09 2004-11-25 Sumika Life Tech Co Ltd Method for removing beehive
US20040229540A1 (en) * 2003-05-15 2004-11-18 Kuraray Co. Ltd. Dustproof clothing
JP2006213616A (en) * 2005-02-02 2006-08-17 Osaka Seiyaku:Kk Animal ectoparasite expelling agent
US20060257342A1 (en) 2005-05-12 2006-11-16 Weilin Mu Long-wearing glossy cosmetic composition
JP2006001942A (en) * 2005-08-31 2006-01-05 Sumitomo Chemical Co Ltd Pest control material
JP2008169141A (en) * 2007-01-11 2008-07-24 Toray Monofilament Co Ltd Insect-controlling monofilament and woven fabric

Patent Citations (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3859121A (en) 1971-01-07 1975-01-07 Us Agriculture Formulations for preparing long lasting insect repellent finishes for textile fabrics
WO1990014006A1 (en) 1989-05-26 1990-11-29 The Wellcome Foundation Limited Pesticidal compositions
JPH06272112A (en) * 1993-03-19 1994-09-27 Mitsubishi Rayon Co Ltd Miteproofing core-sheath type conjugate fiber and its production
JPH08113828A (en) * 1994-10-13 1996-05-07 Nippon Ester Co Ltd Insect repellent core-sheath type conjugated fiber
JPH08120524A (en) * 1994-10-20 1996-05-14 Nippon Ester Co Ltd Polyester fiber
JPH08134720A (en) * 1994-11-09 1996-05-28 Teijin Ltd Functional conjugate fiber and insectproof rug
US5503918A (en) 1995-03-10 1996-04-02 Graniteville Company Method and means for retaining permethrin in washable fabrics
WO1998003718A1 (en) * 1996-07-24 1998-01-29 Wool Research Organisation Of New Zealand Inc. A method for insect-resist treatment of carpets, textiles and insulation products
WO2001037662A1 (en) 1999-11-25 2001-05-31 Dct Aps Composition for impregnation of fabrics and nettings
WO2003003827A1 (en) 2001-07-05 2003-01-16 Disease Control Textiles Aps A fencing
WO2003063587A1 (en) 2002-01-31 2003-08-07 Vestergaard Frandsen A/S Laminated insecticide dispenser
WO2003090532A1 (en) 2002-04-24 2003-11-06 Dct Aps Protective cover for food and water storage containers
GB2388778A (en) 2002-04-29 2003-11-26 Rothamsted Res Ltd Combatting pesticide resistance
WO2006024304A1 (en) 2004-09-03 2006-03-09 Disease Control Textiles Sa System with canopy and electrode for air cleaning
WO2006092094A1 (en) 2005-03-04 2006-09-08 Tianjin Yorkool International Trading Co., Ltd. Fabric finishing liquor for expelling and killing mosquitoes, method of use and products thereof
WO2006127407A1 (en) 2005-05-24 2006-11-30 Wyeth Device and method for controlling insects
WO2006128867A1 (en) 2005-06-03 2006-12-07 Basf Aktiengesellschaft Derivatives of a 1-phenyltriazole as antiparasitic agents
WO2006128870A2 (en) 2005-06-03 2006-12-07 Basf Aktiengesellschaft Composition for the impregnation of fibers, fabrics and nettings imparting a protective activity against pests
US20070009563A1 (en) 2005-07-06 2007-01-11 Rung Hataipitisuk Process for coating fiber or fabric with insecticide using a temperature of 150°c-190°c for drying
US20070157395A1 (en) * 2006-01-12 2007-07-12 Gongping Cao Method for preparing insecticidal textiles by a dyeing process of synthetic fibres with pyrethoids

Non-Patent Citations (5)

* Cited by examiner, † Cited by third party
Title
DATABASE WPI Week 199443, Derwent World Patents Index; AN 1994-347593, XP002481888 *
DATABASE WPI Week 199628, Derwent World Patents Index; AN 1996-272959, XP002481886 *
DATABASE WPI Week 199629, Derwent World Patents Index; AN 1996-283981, XP002481885 *
DATABASE WPI Week 199631, Derwent World Patents Index; AN 1996-307145, XP002481887 *
THOMAS; READ, NATURE REVIEWS MICROBIOLOGY, vol. 5, May 2007 (2007-05-01), pages 377

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AP2010005113A0 (en) 2010-02-28
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JP2010532325A (en) 2010-10-07
ZA201000026B (en) 2011-04-28
BRPI0721787A2 (en) 2013-04-02
DK2170048T3 (en) 2016-08-01
EP2170048A1 (en) 2010-04-07
TW200909635A (en) 2009-03-01
CN101720185B (en) 2015-09-23
WO2009003468A1 (en) 2009-01-08
KR20100051635A (en) 2010-05-17
CN101720185A (en) 2010-06-02
EP3056084B1 (en) 2019-11-20
DK3056084T3 (en) 2020-02-10
US20100136076A1 (en) 2010-06-03

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